16. a solution contains 15. 0 g of naoh in 115. 0 ml of h20. the molarity would be:

(1l = 1000 ml)

Answers

Answer 1

The molarity of the solution containing 15.0 g of NaOH in 115.0 mL of H₂O is 3.26 M.

To calculate the molarity of the solution, we first need to convert the mass of NaOH and the volume of water to moles and liters, respectively.

First, we need to find the number of moles of NaOH in 15.0 g. The molar mass of NaOH is 40.00 g/mol, so:

15.0 g NaOH x (1 mol NaOH/40.00 g NaOH) = 0.375 mol NaOH

Next, we need to convert the volume of water from milliliters to liters:

115.0 mL H₂O x (1 L/1000 mL) = 0.115 L H₂O

Now we can calculate the molarity of the solution:

Molarity = moles of solute/liters of solution

Molarity = 0.375 mol NaOH / 0.115 L H₂O

Molarity = 3.26 M

Therefore, the molarity of the solution is 3.26 M.

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Related Questions

What hybridization would you expect for se when it is found in seo42-?.

Answers

When selenium (Se) is found in the compound SEO42-, it has undergone hybridization to form sp3 hybrid orbitals.

Hybridization is the process by which atomic orbitals of different energy levels combine to form hybrid orbitals with the same energy level. In SEO42-, the Se atom is bonded to four oxygen (O) atoms, and to form these bonds, the Se atom has to hybridize its orbitals.

In its ground state, Se has six valence electrons in its outermost shell - two in the 4s orbital and four in the 4p orbital. To form the four bonds with O, Se hybridizes its orbitals by promoting an electron from the 4s orbital to the 4p orbital. This gives Se four half-filled 4p orbitals, which then hybridize to form four sp3 hybrid orbitals.

Each of these hybrid orbitals is then used to form a sigma bond with one of the four O atoms.

In summary, when Se is found in SEO42-, it undergoes sp3 hybridization to form four sp3 hybrid orbitals, each of which is used to form a sigma bond with one of the four O atoms. This hybridization results in a tetrahedral arrangement of the atoms around the Se atom in the molecule.

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2. A sample of gold contains 1. 77x10^19 electrons. Calculate the VOLUME of


that sample of gold in cm^3. There will be MULTIPLE steps necessary.

Answers

The volume of the gold sample containing 1.77x10¹⁹ electrons is approximately 2.51 × 10⁻¹⁸ cm³. This was determined by calculating the mass of the sample first, which was 1.2212 grams, and then using the density of gold to determine the volume.

Assuming that the gold sample is electrically neutral, the number of electrons is equal to the number of protons, which is also the atomic number of gold. Therefore, we can determine the mass of the sample using the atomic weight of gold (196.97 g/mol) and Avogadro's number (6.022 × 10²³ particles/mol):

1.77 × 10¹⁹ electrons x (1 atom Au / 79 electrons) x (196.97 g / 1 mol) x (1 mol / 6.022 × 10²³ atoms) = 4.85 × 10⁻¹⁷ g

Next, we can use the density of gold (19.3 g/cm³) to calculate the volume of the sample:

4.85 × 10 g x (1 cm³ / 19.3 g) = 2.51 × 10⁻¹⁸ cm³

Therefore, the volume of the sample of gold is 2.51 × 10⁻¹⁸ cm³.

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the reaction of nitrogen gas with oxygen gas, , has a kp value of 0.50 at some temperature. if 0.100 atm of n2 and o2 are placed in a closed vessel and allowed to come to equilibrium, what is the approximate equilibrium partial pressure of no gas?

Answers

The approximate equilibrium partial pressure of NO gas is 0.005 atm.

The balanced chemical equation for the reaction is:

N2(g) + O2(g) ⇌ 2NO(g)

The equilibrium constant expression for this reaction is:

[tex]Kp = (PNO)2 / (PN2)(PO2)[/tex]

At equilibrium, let x be the partial pressure of NO gas. Then the partial pressures of N2 and O2 gas will both be (0.100 - x) atm. Substituting these values into the equilibrium constant expression and solving for x gives:

[tex]0.50 = x^2 / (0.100 - x)^2\\0.50(0.100 - x)^2 = x^2\\0.005 - 0.1x + 0.5x^2 = x^2\\0.5x^2 - 0.1x + 0.005 = 0[/tex]

Using the quadratic formula, we can solve for x:

[tex]x = [0.1 ± sqrt(0.1^2 - 4(0.5)(0.005))] / (2(0.5)) \\x = [0.1 ± 0.195] / 1 \\x = 0.295 or x = 0.005[/tex]

Since the initial partial pressures of N2 and O2 are both 0.100 atm, the equilibrium partial pressure of NO cannot be greater than 0.100 atm. Therefore, the only possible solution is:

x = 0.005 atm

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How many grams of protein are needed to produce 23,000 cal of energy? Every gram of protein can produce 17 KJ of energy

Answers

A total of 96,320 kJ / 17 kJ per gram of protein = 5,670 grams of protein.

To determine the grams of protein needed to produce 23,000 calories of energy, we need to convert the calories to kilojoules (kJ) and then divide by the energy produced by each gram of protein.

23,000 calories = 96,320 kJ (1 calorie = 4.184 kJ)
Each gram of protein produces 17 kJ of energy.


Protein is an important nutrient for our bodies, as it provides the building blocks for our muscles, bones, and other tissues. It also plays a role in many cellular functions and processes. One of the functions of protein is to provide energy for our bodies, although this is not its primary role.

When we eat protein, our bodies break it down into amino acids, which can then be used for various purposes. One of these purposes is to produce energy.

Every gram of protein contains 4 calories, or 17 kilojoules, of energy. This is less than the amount of energy provided by a gram of fat (9 calories or 37 kilojoules) or a gram of carbohydrate (4 calories or 17 kilojoules), but it is still significant.

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how much energy is required to take ice from -15 C to 125 C
(150g of ice)

Answers

It takes approximately 406,687.5 joules of energy to take 150 grams of ice from -15°C to 125°C.

To determine the amount of energy required to take ice from -15°C to 125°C, we need to consider two stages of the process; Heating the ice from -15°C to 0°C, causing it to melt, and Heating the resulting water from 0°C to 125°C

We can calculate the amount of energy required for each stage separately and then add them together to get the total energy required.

Heating the ice from -15°C to 0°C; The specific heat capacity of ice is 2.09 J/(g·°C), which means that it takes 2.09 joules of energy to raise the temperature of 1 gram of ice by 1°C. Since we have 150 grams of ice, we can calculate the amount of energy required to raise the temperature of the ice from -15°C to 0°C as;

Q1 = m × c × ΔT

= 150 g × 2.09 J/(g·°C) × (0°C - (-15°C))

= 4,987.5 J

Therefore, it takes 4,987.5 joules of energy to heat the ice from -15°C to 0°C

Heating the water from 0°C to 125°C; The specific heat capacity of water is 4.18 J/(g·°C), which means that it takes 4.18 joules of energy to raise the temperature of 1 gram of water by 1°C. We need to heat the water from 0°C to 100°C (the boiling point of water at standard pressure) and then from 100°C to 125°C.

For the first stage, we can calculate the amount of energy required as;

Q₂a = m × c × ΔT

= 150 g × 4.18 J/(g·°C) × (100°C - 0°C)

= 62,700 J

The heat of vaporization of water at standard pressure is 2,260 J/g. Since we have 150 grams of water, we can calculate the amount of energy required to convert all the water to steam as:

Q₂b = m × Lv = 150 g × 2,260 J/g

= 339,000 J

Therefore, it takes a total of;

Q = Q₁ + Q₂a + Q₂b

= 4,987.5 J + 62,700 J + 339,000 J

= 406,687.5 J

Therefore, it takes 406,687.5 joules of energy.

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A certain amount of gas is contained in a closed
mercury manometer as shown here. Assuming no
other parameters change, would h increase,
decrease, or remain the same if (a) the amount of
the gas were increased; (b) the molar mass of the
gas were doubled; (c) the temperature of the gas
was increased; (d) the atmospheric pressure in
the room was increased; (e) the mercury in the
tube were replaced with a less dense fluid;
(f) some gas was added to the vacuum at the top of
the right-side tube; (g) a hole was drilled in the top
of the right-side tube?

Answers

If a certain amount of gas is contained in a closed mercury manometer then: a. This would cause the height difference h to increase.

b. This would cause an increase in the pressure difference ΔP, leading to an increase in the height difference h.

c. This would cause an increase in the pressure difference ΔP, leading to an increase in the height difference h.

d. the pressure difference ΔP would decrease, leading to a decrease in the height difference h.

e. the pressure difference ΔP would decrease, leading to a decrease in the height difference h.

f. decrease in the pressure difference ΔP and a decrease in the height difference h.

g. This would cause the pressure difference ΔP to decrease, leading to a decrease in the height difference h.

In a closed mercury manometer, the height difference h between the two arms of the manometer is related to the pressure difference between the gas in the container and the atmospheric pressure outside. Specifically, the pressure difference is given by the hydrostatic pressure difference between the heights of the mercury columns in the two arms:

ΔP = ρgh

where ρ is the density of mercury, g is the acceleration due to gravity, and h is the height difference between the two columns.

(a) If the amount of gas in the container were increased, the pressure of the gas would increase, leading to an increase in the pressure difference ΔP. This would cause the height difference h to increase.

(b) If the molar mass of the gas were doubled, the gas would be heavier and thus would exert a higher pressure for the same amount of gas in the container. This would cause an increase in the pressure difference ΔP, leading to an increase in the height difference h.

(c) If the temperature of the gas were increased, the gas molecules would move faster and exert a higher pressure for the same amount of gas in the container. This would cause an increase in the pressure difference ΔP, leading to an increase in the height difference h.

(d) If the atmospheric pressure in the room were increased, the pressure difference ΔP would decrease, leading to a decrease in the height difference h.

(e) If the mercury in the tube were replaced with a less dense fluid, the pressure difference ΔP would decrease, leading to a decrease in the height difference h.

(f) If some gas were added to the vacuum at the top of the right-side tube, the pressure in the right-side tube would increase, leading to a decrease in the pressure difference ΔP and a decrease in the height difference h.

(g) If a hole were drilled in the top of the right-side tube, air would rush in and the pressure in the right-side tube would equalize with the atmospheric pressure. This would cause the pressure difference ΔP to decrease, leading to a decrease in the height difference h.

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A gas occupies 900 mL at a temperature of 27. 0°C. What is the


Temperature of the gas if the volume of the container increases to 1074


mL?

Answers

The temperature of the gas when the volume of the container increases to 1074 mL is 358.15 K or 85.0°C

The behavior of gases is affected by several factors including temperature, pressure, and volume. One important principle that applies to gases is that they tend to occupy the entire volume of their container. Therefore, if the volume of the container increases, the gas will occupy more space.

In this particular scenario, the gas initially occupies 900 mL at a temperature of 27.0°C. When the volume of the container increases to 1074 mL, we need to determine the corresponding temperature of the gas. To do this, we can use the formula:

(V1/T1) = (V2/T2)

Where V1 and T1 represent the initial volume and temperature of the gas, respectively, and V2 and T2 represent the final volume and temperature of the gas, respectively.

Substituting the given values into the formula, we get:

(900/300.15) = (1074/T2)

Simplifying the equation, we can cross-multiply and solve for T2:

900T2 = 1074 x 300.15

T2 = 1074 x 300.15 / 900

T2 = 358.15 K

Therefore, the temperature of the gas when the volume of the container increases to 1074 mL is 358.15 K or 85.0°C (rounded to one decimal place).

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You analyze an unknown substance and discover that it mainly contains the elements carbon, hydrogen, oxygen , and nitrogen. What is the most likely source of the substance? Explain

Answers

The most likely source of a substance containing carbon, hydrogen, oxygen, and nitrogen is a living organism, such as a plant or an animal.

This is because these four elements are the main components of organic matter, which is found in living things. Carbon is the backbone of organic molecules, while hydrogen and oxygen are also found in many organic compounds, including carbohydrates and lipids.

Nitrogen is an essential component of amino acids, which are the building blocks of proteins. Therefore, if a substance contains all four of these elements, it is likely that it was produced by a living organism or is a byproduct of a living organism's metabolism.

However, this is not always the case, as there are other sources of these elements, such as fossil fuels, which contain carbon and hydrogen, and water, which contains hydrogen and oxygen.

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How many liters of NO2 (at STP) can be produced with 25.0 g of Cu reacting with concentrated nitric acid?

Answers

The volume (in liters) of NO₂ at STP that can be produced when 25 g of Cu react with concentrated nitric acid, HNO₃ is 17.6 liters

How do i determine the volume of of NO₂ produced?

First, we shall determine the mole in 25 g of Cu. Details below:

Mass of Cu = 25 g Molar mass of Cu = 63.55 g/mol Mole of Cu =?

Mole = mass / molar mass

Mole of Cu = 25 / 63.55

Mole of Cu = 0.393 mole

Next, we shall determine the mole of of NO₂ produced from the reaction. Details below:

Cu + 4HNO3 -> Cu(NO₃)₂ + 2NO₂ + 2H₂O

From the balanced equation above,

1 mole of Cu reacted to produced 2 moles of NO₂

Therefore,

0.393 mole of Si will react to produce = 0.393 × 2 = 0.786 mole of NO₂

Finally, we shall obtain the volume of NO₂ produced at STP. Details below

At STP,

1 mole of NO₂ = 22.4 Liters

Therefore,

0.786 moles of NO₂ = 0.786 × 22.4

0.786 moles of NO₂ = 17.6 liters

Thus, we can conclude that the volume of NO₂ produced is 17.6 liters

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Use this equation to answer the following two questions.


2 Mg + O2 → 2Mgo


5) If you have 7. 8 moles of magnesium and 4. 7 moles of oxygen, which one 2 points


will be the EXCESS reactant if they are allowed to react until ithe reaction


stops?


magnesium


oxygen


O magnesium oxide

Answers

The excess reactant will be oxygen.

To determine the excess reactant, we need to compare the amount of moles of each reactant to the stoichiometry of the balanced equation. The stoichiometric ratio between magnesium and oxygen is 2:1, which means that for every 2 moles of magnesium, 1 mole of oxygen is required for complete reaction.

In this case, we have 7.8 moles of magnesium and 4.7 moles of oxygen. Based on the stoichiometric ratio, we can see that 7.8 moles of magnesium require 3.9 moles of oxygen (2 moles of oxygen for every 1 mole of magnesium). Since we only have 4.7 moles of oxygen, it is the limiting reactant, and magnesium will be in excess.

Therefore, after the reaction is complete, all of the magnesium will be consumed, and some oxygen will be left over. The product of the reaction will be 7.8 moles of magnesium oxide.

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A piston in an engine is designed to have a maximum volume of 0.885 l when fully expanded and a minimum volume of 0.075 l when fully depressed. if the gas causes the piston to exceed its maximum volume, it will fail. in a testing situation, a hydrocarbon gas is combusted while the piston is depressed, causing the internal temperature to increase very rapidly from 171°c to 5934°c. will the piston fail? show

Answers

To determine if the piston will fail, we need to calculate the volume of the gas at the higher temperature and see if it exceeds the maximum volume of the piston.

First, we need to assume that the gas behaves ideally and follows the gas laws. We can use the ideal gas law, PV=nRT, where P is the pressure, V is the volume, n is the number of moles of gas, R is the gas constant, and T is the temperature in Kelvin.

We know the initial volume of the gas is 0.075 L and the initial temperature is 171°C, which is 444 K (since we need to convert to Kelvin). We don't know the pressure or the number of moles, but we can assume they remain constant.

Next, we need to calculate the final volume of the gas when it is heated to 5934°C, which is 6207 K. We know that the pressure and number of moles remain constant, so we can rearrange the ideal gas law to solve for V:

V = nRT/P

We can plug in the values for n, R, P, and T, and solve for V:

V = (n x R x 6207 K) / P

Now we need to check if this final volume exceeds the maximum volume of the piston, which is 0.885 L. If it does, then the piston will fail.

To convert the final volume from liters to cubic centimeters (cc), we can multiply by 1000:

V = (n x R x 6207 K x 1000) / P

V = (n x 8.31 J/mol K x 6207 K x 1000) / P

V = (n x 51476870 J/mol) / P

Assuming the pressure remains constant, we can set the initial and final volumes equal to each other and solve for n:

n x 8.31 J/mol K x 444 K = n x 51476870 J/mol x 6207 K

n = (8.31 J/mol K x 444 K) / (51476870 J/mol x 6207 K)

n = 2.34 x 10^-7 mol

Now we can plug in the value for n and solve for the final volume:

V = (2.34 x 10^-7 mol x 8.31 J/mol K x 6207 K x 1000) / 1 atm

V = 1.42 cc

Since the final volume of the gas is only 1.42 cc, which is much smaller than the maximum volume of the piston (0.885 L or 885 cc), the piston will not fail.

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. if 3.7 moles of propane (c3hs) are at a temperature of 28°c and are under 154.2 kpa of pressure, what volume does the sample occupy?​

Answers

The volume occupied by 3.7 moles of propane at a temperature of 28°C and under 154.2 kPa of pressure is approximately 55.44 liters.

To find the volume occupied by 3.7 moles of propane (C3H8) at a temperature of 28°C and under 154.2 kPa of pressure, we will use the Ideal Gas Law, which is given by the equation:

PV = nRT

where P is the pressure, V is the volume, n is the number of moles, R is the ideal gas constant, and T is the temperature in Kelvin.

First, we need to convert the temperature from Celsius to Kelvin:
T = 28°C + 273.15 = 301.15 K

Next, we will use the ideal gas constant in the appropriate units (since the pressure is given in kPa):
R = 8.314 J/(mol·K) = 8.314 kPa·L/(mol·K)

Now we can rearrange the Ideal Gas Law equation to solve for the volume (V):

V = nRT / P

Substitute the known values into the equation:

V = (3.7 moles) × (8.314 kPa·L/(mol·K)) × (301.15 K) / (154.2 kPa)

V ≈ 55.44 L

So, the volume occupied by 3.7 moles of propane at a temperature of 28°C and under 154.2 kPa of pressure is approximately 55.44 liters.

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5. It is helpful to occasionally rinse the sides of the beaker or flask with distilled water
during the titration procedure. Explain why or why not it is necessary to measure the
volume of rinse water used during the procedure.

Answers

Measuring the volume of rinse water does not significantly impact the overall volume during titration.

What is titration?

Titration is a commonly employed laboratory method that involves determining the concentration of an unknown solution by reacting it with a solution of known concentration, known as the titrant, until the chemical reaction between the two is fully completed. This process requires precision and accuracy to ensure reliable results are obtained.

Why or why not it is necessary to measure the volume of rinse water used during the procedure?

To guarantee that all reactants are thoroughly mixed and avoid any skewing of results due to reactants left on the walls of the container, it is useful to rinse the sides of the beaker or flask with distilled water during titration. However, measuring the volume of rinse water used is not necessary as it does not significantly impact the overall volume of titrant used in titration. It is crucial to be mindful not to use an excessive amount of rinse water as this can dilute the sample and compromise result accuracy. Rest assured that accuracy will not be affected by the volume of rinse water used, but it's essential to maintain a balance between thorough rinsing and preserving sample concentration.

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If the balloon was filled up to a volume of 2. 0 L at room temperature (25oC), what will the new volume be if the balloon is placed in the freezer for a few hours at -20oC?Gay-Lussac’s Law.

Answers

The new volume, by using Gay-Lussac's Law, of the balloon after being placed in the freezer would be 1.3 L.

Gay-Lussac’s Law, also known as the pressure-temperature law, states that the pressure and temperature of a gas are directly proportional to each other, provided that the volume and the amount of gas remain constant.

This law is represented mathematically as P1/T1 = P2/T2, where P1 and T1 represent the initial pressure and temperature, and P2 and T2 represent the final pressure and temperature.

In this case, we can use Gay-Lussac’s Law to determine the new volume of the balloon after being placed in the freezer. Since the amount of gas and the volume remain constant, we can rearrange the equation to solve for the new volume.

First, we need to convert the temperatures to Kelvin (K) since the equation requires absolute temperature. To do this, we add 273.15 to the given temperatures. Therefore, the initial temperature (25oC) is 298.15 K, and the final temperature (-20oC) is 253.15 K.

Using the equation P1/T1 = P2/T2, we can solve for the new pressure at the final temperature:

P2 = P1(T2/T1) = (1 atm)(253.15 K/298.15 K) = 0.85 atm

Now that we have the final pressure, we can use the ideal gas law to determine the new volume:

PV = nRT

V2 = (nRT2)/P2

Assuming that the amount of gas and the gas constant (R) remain constant, we can simplify the equation to:

V2/V1 = T2/T1(P2/P1)

Plugging in the given values, we get:

V2/2.0 L = (253.15 K)/(298.15 K)(0.85 atm)/(1 atm)

Simplifying this equation, we get:

V2 = 1.3 L

Therefore, the new volume of the balloon after being placed in the freezer would be 1.3 L.

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You need to prepare an acetate buffer of pH 5. 17
from a 0. 660 M
acetic acid solution and a 2. 63 M KOH
solution. If you have 930 mL
of the acetic acid solution, how many milliliters of the KOH
solution do you need to add to make a buffer of pH 5. 17
? The pa
of acetic acid is 4. 76. Be sure to use appropriate significant figures

Answers

The volume that is needed is 173 mL of KOH solution is needed to prepare this buffer.

The reaction between acetic acid (CH₃COOH) and KOH can be written as follows.

CH₃COOH +  KOH ------------->  CH₃COOK +  H₂O

CH3COOH is a weak acid and CH₃COOK is its strong salt, therefore together they make a buffer system.

Let's say we add "x" moles of base KOH . Let's draw ICE table to find out moles at equilibrium

Initial moles of CH₃COOH are 0.654 mol/L * 625 mL * 1 L / 1000 mL = 0.40875 mol

 CH3COOH KOH CH3COOK H2O

I 0.40875 x 0 -

C -x -x +x -

E 0.40875 - x  0 x  

At equilibrium, we have 0.40875 - x moles of acid and x moles of its conjugate base.

Let's use Henderson Hasselbalch equation to solve for x.

pH = pKa +  log  ( base/ acid)

the required pH is 5.87 and pKa is given as 4.76

5.87 = 4.76 + log ( x / 0.40875 - x )

5.87 - 4.76 = log ( x / 0.40875 - x )

1.11 = log ( x / 0.40875 - x )

10¹°¹¹ =  ( x / 0.40875 - x )

12.88 = x / 0.40875 - x

12.88 ( 0.40875 - x ) =  x

5.266 - 12.88 x =  x

5.266 = 13.88 x

x = 5.266 / 13.88

x = 0.379

From ICE table, we know that x is moles of KOH

Molarity of KOH is given as 2.19M

Molarity = moles of KOH / liters

2.19 = 0.379 / Liters

Liters of KOH = 0.379 / 2.19

Liters of KOH = 0.173 L

173 mL of KOH solution is needed to prepare this buffer.

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How many grams of ammonia are made if 23.5 grams of diatomic hydrogen reacts?

Answers

Answer: 134g NH3

Explanation:

Diatomic Hydrogen has a mass of 2.016g/mol

to find how many moles of H2 we have divide how much we have by the molar mass.

23.5g/2.016= 11.66 moles

the ratio between H2 moles and NH3 moles is 3 moles of H2 produce 2 moles of NH3 so we multiply using a 2/3 ratio to find how many moles of NH3 we have

11.66mol H2 x (2molNH3/3molH2) = 7.77 moles NH3

now we multiply the number of moles of NH3 by the molar mass of NH3 (17.3g/mol) to find how many grams of NH3 we have.

7.77 x 17.3g = 134.4g NH3 or using 3 sig figs 134g NH3

Consider what happens when the strong acid, nitric acid (hno3), reacts with water.

a) write the balanced equation for the ionization reaction. (there are two ways to write it.)

b) write the two expressions for ka.

c) what can we say about the size of ka for this reaction?

Answers

a) The ionization reaction of nitric acid (HNO₃) with water can be written in two different ways:

HNO₃ + H₂O → H₃O⁺ + NO₃⁻

or

HNO₃ + H₂O ⇌ H⁺ + NO₃⁻ + H₂O

Both equations are balanced.

b) The two expressions for the acid dissociation constant (Ka) can be derived from the two equations above:

Ka = [H₃O⁺][NO₃⁻] / [HNO₃]

or

Ka = [H⁺][NO₃⁻] / [HNO₃]

c) Nitric acid is a strong acid, meaning that it fully dissociates in water. As a result, the concentration of HNO3 in the equation is very low, making the Ka value very large. In fact, the Ka value for nitric acid is around 24, which is significantly higher than the Ka values for weak acids. This indicates that nitric acid is a very strong acid.

Let us learn more about this.

a) Ionization reaction - The ionization reaction refers to the process in which a molecule or compound dissociates into ions when it comes into contact with a solvent such as water. In the case of nitric acid (HNO₃), when it is added to water, it ionizes to produce hydronium ions (H₃O⁺) and nitrate ions (NO₃⁻), which is represented by the following balanced equation: HNO₃ + H₂O -> H₃O⁺ + NO₃⁻

b) Ka - To define Ka, we need to first understand that it is the equilibrium constant for the ionization reaction, which indicates the strength of an acid. Specifically, Ka measures the extent to which an acid dissociates in water, which can be expressed as the following two equations: Ka = [H₃O⁺][NO₃⁻]/[HNO₃] Ka = [H⁺][NO₃⁻]/[HNO₃] where [H₃O⁺] and [H⁺] represent the concentration of hydronium ions, and [NO₃⁻] and [HNO₃] represent the concentration of nitrate ions and nitric acid, respectively.

c) As nitric acid is a strong acid, it dissociates completely in water, meaning that the concentration of H₃O⁺ and NO₃⁻ ions will be high compared to the concentration of undissociated HNO₃. Therefore, the value of Ka for this reaction will be very large, indicating that nitric acid is a strong acid with a high degree of ionization.

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What volume of 0.8m naoh would be required to titrate 300 ml of 0.6 m phosphoric acid? assume a 1:1 mole ratio.

Answers

To determine the volume of 0.8m NaOH required to titrate 300 ml of 0.6m phosphoric acid, we first need to understand the mole ratio between the two substances. According to the given assumption of a 1:1 mole ratio, one mole of NaOH reacts with one mole of phosphoric acid.

Next, we can calculate the number of moles of phosphoric acid present in the solution by multiplying the molarity (0.6m) by the volume (300ml) and converting to moles using the molecular weight of phosphoric acid. This gives us 0.108 moles of phosphoric acid.

Since the mole ratio is 1:1, we will need 0.108 moles of NaOH to completely titrate the phosphoric acid. To determine the volume of 0.8m NaOH required to provide 0.108 moles, we can use the formula:

moles = molarity x volume (in liters)

Rearranging this equation, we get:

volume (in liters) = moles / molarity

Substituting the values, we get:

volume (in liters) = 0.108 moles / 0.8m = 0.135 liters

Multiplying this by 1000ml/liter, we get the final answer:

Volume of 0.8m NaOH required = 135 ml.

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How many grams of chlorine gas must be reacted with excess sodium iodide if 10 grams of sodium chloride are needed?

Answers

Answer:

sorry xouldnt answer all

Explanation:

thier is ¹² equations ln tour answer

Do the elements that make up polyatomic ions share or trade electrons?

Answers

Yes, elements that make up polyatomic ions share their electrons.

Polyatomic ions are ions that are composed of more than two atoms.

Atoms are covalently bonded to each other  and in the entire structure non-neutral charge is present .The bonding electrons are distributed throughout the polyatomic ions and they are not localized between two atoms. A polyatomic ion is a molecule that can be ionized by either gaining or losing of electrons. The group of covalently bonded atoms altogether carries a net charge, this is because the total number of electrons in a molecule is not equal to the total number of protons present in the molecule.

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ASAP. Magnetic field lines cannot be observed using a compass or iron filings.

True or false

Answers

Answer:

false

Explanation:

magnetic field lines can be accurately observed using *iron filling*

False iron fillings and compass can be used

which of the following compounds has a larger lattice energy licl or csbr

Answers

CsBr has a larger lattice energy than LiCl because Cs+ has a larger ionic radius and a greater charge than Li+.

The lattice energy of an ionic compound is determined by the strength of the electrostatic attraction between the ions in the solid crystal lattice. This attraction is influenced by the charges on the ions and the distance between them. The larger the charge on the ions, the greater the lattice energy, and the smaller the distance between them, the greater the lattice energy.

Br- also has a greater charge density than Cl-, making the electrostatic attraction between Cs+ and Br- stronger than that between Li+ and Cl-. Therefore, CsBr has a higher lattice energy than LiCl.

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A solution of 0. 600M HCl is used to titrate 15. 00 mL of KOH solution. The endpoint of


titration is reached after the addition of 27. 13 mL of HCI. What is the concentration of


the KOH solution?


9. 000M


O 1. 09M


O 0. 332M


0 0. 0163M

Answers

A solution of 0. 600M HCl is used to titrate 15. 00 mL of KOH solution. The endpoint of titration is reached after the addition of 27. 13 mL of HCI. The concentration of the KOH solution is (b) 1.09 M.

To solve this problem, we can use the balanced chemical equation for the reaction between HCl and KOH:

HCl + KOH → KCl + H₂O

From the balanced equation, we can see that one mole of HCl reacts with one mole of KOH.

Given that 0.600 M HCl is used and 27.13 mL is added to reach the endpoint, we can calculate the number of moles of HCl used:

moles HCl = M x V = 0.600 M x 0.02713 L = 0.01628 mol HCl

Since the reaction is 1:1, there must be 0.01628 mol of KOH in the 15.00 mL solution. We can calculate the concentration of KOH as follows:

Molarity = moles / volume

Molarity = 0.01628 mol / 0.01500 L = 1.09 M

Therefore, the concentration of the KOH solution is (b) 1.09 M.

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which are true of the greenhouse effect? multiple select question. all energy from the sun is absorbed by atmospheric gases. some sunlight is absorbed and some is reflected by the atmosphere. some infrared energy is absorbed by gases such as carbon dioxide (co2), water vapor (h2o), and methane (ch4). it changes sunlight and transforms it into carbon dioxide. some light is absorbed by the land and oceans, which radiate infrared energy back into the atmosphere.

Answers

The true statements regarding the greenhouse effect are:

Some sunlight is absorbed and some is reflected by the atmosphere.Some infrared energy is absorbed by gases such as carbon dioxide (CO2), water vapor (H2O), and methane (CH4).Some light is absorbed by the land and oceans, which radiate infrared energy back into the atmosphere. Options B, C and E are correct.

The greenhouse effect is a natural process that occurs when certain gases in the atmosphere, known as greenhouse gases, trap heat from the sun and prevent it from escaping back into space. This helps to keep the Earth's surface warm enough to support life. However, human activities, such as burning fossil fuels, have increased the concentration of greenhouse gases in the atmosphere, which has led to an enhanced greenhouse effect and global warming.

In the greenhouse effect, not all energy from the sun is absorbed by atmospheric gases. Rather, some of it is reflected back into space by the atmosphere. Additionally, the greenhouse effect does not change sunlight into carbon dioxide; rather, it is the burning of fossil fuels and other human activities that release carbon dioxide into the atmosphere. Options B, C and E are correct.

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In the bohr model, what happens when an electron makes a transition between orbits?.

Answers

In the Bohr model of the atom, electrons can exist only in certain discrete energy levels, or orbits, around the nucleus. When an electron transitions between two orbits with different energy levels, it absorbs or emits a photon of electromagnetic radiation with a specific energy corresponding to the difference in energy between the two levels.

If an electron absorbs a photon, it gains energy and moves to a higher energy level, or outer orbit. This is known as an "excited state". However, this is unstable, and the electron will eventually return to its original energy level, or ground state, by emitting a photon with the same energy as the absorbed photon.

On the other hand, if an electron emits a photon, it loses energy and moves to a lower energy level, or inner orbit. This is known as a "relaxed state". In this case, the emitted photon has an energy equal to the difference in energy between the two levels.

Overall, when an electron makes a transition between orbits, it either absorbs or emits a photon of electromagnetic radiation, with the energy of the photon corresponding to the difference in energy between the two levels.

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Engineers designing a new energy efficient product will make the first model called a

Answers

Engineers designing a new energy efficient product will make the first model called a prototype.

A prototype is the initial model that engineers create in order to test and evaluate the feasibility of their design. This model is usually made using cheaper and more readily available materials compared to the final product.

The purpose of the prototype is to identify any design flaws or areas for improvement, and make the necessary changes before moving forward with the production process. Engineers will often make multiple prototypes until they are satisfied with the design and performance of the product.

In the case of energy-efficient products, engineers will focus on developing a prototype that utilizes minimal energy consumption while still providing the desired level of functionality. This requires careful consideration of the materials and components used in the product, as well as the design of the product itself.

Once the prototype has been tested and refined, engineers can move on to creating the final product. By creating a prototype first, engineers can ensure that their design is both efficient and effective, ultimately resulting in a product that is better for both the environment and the consumer.

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How many grams of silver is produced if 83.4 grams of lithium react

Answers

To determine how many grams of silver is produced if 83.4 grams of lithium react, we need to know the balanced chemical equation for this reaction. Since the exact reaction involving silver and lithium is not provided, I will assume a hypothetical reaction for illustration purposes:

Li + AgNO₃ → LiNO₃ + Ag

In this example reaction, one mole of lithium reacts with one mole of silver nitrate (AgNO₃) to produce one mole of lithium nitrate (LiNO₃) and one mole of silver (Ag).

Step 1: Calculate the moles of lithium
Moles of Li = (mass of Li) / (molar mass of Li)
Molar mass of Li = 6.94 g/mol
Moles of Li = 83.4 g / 6.94 g/mol = 12.02 mol

Step 2: Determine the mole ratio from the balanced equation
In this hypothetical reaction, the mole ratio of Li to Ag is 1:1.

Step 3: Calculate the moles of silver produced
Since the mole ratio is 1:1, the moles of silver produced is equal to the moles of lithium reacted:
Moles of Ag = 12.02 mol

Step 4: Calculate the mass of silver produced
Mass of Ag = (moles of Ag) × (molar mass of Ag)
Molar mass of Ag = 107.87 g/mol
Mass of Ag = 12.02 mol × 107.87 g/mol = 1296.08 g

In this hypothetical reaction, 1296.08 grams of silver would be produced if 83.4 grams of lithium react. Please note that this answer is based on a made-up example, and the actual reaction involving silver and lithium may differ.

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What change in volume results if 50.0 mL of gas is cooled from 48.0 °C to
3°C?

Answers

Answer:

-2.6 mL.

Explanation:

To solve this question, we need to use the formula:

V1/T1 = V2/T2

where V1 and T1 are the initial volume and temperature of the gas, and V2 and T2 are the final volume and temperature of the gas. We also need to convert the temperatures from degrees Celsius to kelvins by adding 273.15. Plugging in the given values, we get:

50.0 mL / (48.0 + 273.15) K = V2 / (3 + 273.15) K

Solving for V2, we get:

V2 = 50.0 mL x (3 + 273.15) K / (48.0 + 273.15) K V2 = 47.4 mL

Therefore, the change in volume is:

ΔV = V2 - V1 ΔV = 47.4 mL - 50.0 mL ΔV = -2.6 mL

The negative sign indicates that the volume decreases when the gas is cooled.

The answer is -2.6 mL.

2. A Snickers bar is burned in a bomb calorimeter containing 3500 grams of water causing a


72°C temperature change. How many joules are there in a bar?

Answers

The Snickers bar released 1,077,280 joules of energy when burned.

To calculate the energy released by burning a Snickers bar, we can use the formula:

q = mcΔT

where q is the heat energy released, m is the mass of water, c is the specific heat of water, and ΔT is the temperature change.

We know the mass of water is 3500 g, and the temperature change is 72°C. The specific heat of water is 4.184 J/g°C.

Therefore:

q = (3500 g) x (4.184 J/g°C) x (72°C) = 1077280 J

So, the Snickers bar released 1,077,280 joules of energy when burned.

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How do the bond types at the atomic level relate to the structure of the material at the macroscopic level?

Answers

The types of chemical bonds present in a material determine the arrangement of atoms or molecules at the microscopic level, which in turn determines the properties of the material at the macroscopic level.

For example, materials with ionic bonds tend to have high melting and boiling points due to the strong electrostatic attraction between positively and negatively charged ions. Covalently bonded materials tend to have lower melting and boiling points due to the weaker intermolecular forces between molecules.

Metallic bonding leads to high electrical and thermal conductivity due to the delocalization of electrons within the metal lattice. These different bond types and resulting material properties are important in understanding the behavior and applications of different materials.

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